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评估一种简单的唯象模型在 WWTP 入口处氨氮浓度在线预测中的性能。

Evaluating the performance of a simple phenomenological model for online forecasting of ammonium concentrations at WWTP inlets.

机构信息

Krüger A/S, Veolia Water Technologies, Gladsaxevej 363, 2860 Søborg, Denmark E-mail:

Department of Environmental Engineering (DTU Environment), Technical University of Denmark, Building 115, 2800 Kongens Lyngby, Denmark.

出版信息

Water Sci Technol. 2020 Jan;81(1):109-120. doi: 10.2166/wst.2020.085.

DOI:10.2166/wst.2020.085
PMID:32293594
Abstract

A simple model for online forecasting of ammonium (NH ) concentrations in sewer systems is proposed. The forecast model utilizes a simple representation of daily NH profiles and the dilution approach combined with information from online NH and flow sensors. The method utilizes an ensemble approach based on past observations to create model prediction bounds. The forecast model was tested against observations collected at the inlet of two wastewater treatment plants (WWTPs) over an 11-month period. NH data were collected with ion-selective sensors. The model performance evaluation focused on applications in relation to online control strategies. The results of the monitoring campaigns highlighted a high variability in daily NH profiles, stressing the importance of an uncertainty-based modelling approach. The maintenance of the NH sensors resulted in important variations of the sensor signal, affecting the evaluation of the model structure and its performance. The forecast model succeeded in providing outputs that potentially can be used for integrated control of wastewater systems. This study provides insights on full scale application of online water quality forecasting models in sewer systems. It also highlights several research gaps which - if further investigated - can lead to better forecasts and more effective real-time operations of sewer and WWTP systems.

摘要

提出了一种用于在线预测污水系统中氨(NH )浓度的简单模型。该预测模型利用了每日 NH 分布的简单表示形式以及与在线 NH 和流量传感器信息相结合的稀释方法。该方法利用基于过去观测的集合方法来创建模型预测范围。该预测模型在经过 11 个月的时间,在两个污水处理厂(WWTP)的入口处收集的观测数据进行了测试。NH 数据是使用离子选择性传感器收集的。模型性能评估侧重于与在线控制策略相关的应用。监测活动的结果突出了每日 NH 分布的高度可变性,强调了基于不确定性的建模方法的重要性。NH 传感器的维护会导致传感器信号发生重要变化,从而影响模型结构及其性能的评估。预测模型成功提供了可能用于废水系统综合控制的输出。本研究提供了有关在线水质预测模型在污水系统中的全面应用的见解。它还强调了几个研究空白,如果进一步研究,可能会导致更好的预测和更有效的实时污水和 WWTP 系统运行。

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